US4769109A - Relatively inexpensive thermoformable mat and rigid laminate formed therefrom - Google Patents

Relatively inexpensive thermoformable mat and rigid laminate formed therefrom Download PDF

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US4769109A
US4769109A US06/944,227 US94422786A US4769109A US 4769109 A US4769109 A US 4769109A US 94422786 A US94422786 A US 94422786A US 4769109 A US4769109 A US 4769109A
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percent
mat
synthetic polymer
weight
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US06/944,227
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Bengt A. Tellvik
Andrew J. Manning
Douglas C. Woerner
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Tarkett Inc
Nouryon Surface Chemistry AB
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Tarkett Inc
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B5/00Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts
    • B32B5/22Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by the presence of two or more layers which are next to each other and are fibrous, filamentary, formed of particles or foamed
    • B32B5/24Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by the presence of two or more layers which are next to each other and are fibrous, filamentary, formed of particles or foamed one layer being a fibrous or filamentary layer
    • B32B5/26Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by the presence of two or more layers which are next to each other and are fibrous, filamentary, formed of particles or foamed one layer being a fibrous or filamentary layer another layer next to it also being fibrous or filamentary
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C51/00Shaping by thermoforming, i.e. shaping sheets or sheet like preforms after heating, e.g. shaping sheets in matched moulds or by deep-drawing; Apparatus therefor
    • B29C51/14Shaping by thermoforming, i.e. shaping sheets or sheet like preforms after heating, e.g. shaping sheets in matched moulds or by deep-drawing; Apparatus therefor using multilayered preforms or sheets
    • B29C51/145Shaping by thermoforming, i.e. shaping sheets or sheet like preforms after heating, e.g. shaping sheets in matched moulds or by deep-drawing; Apparatus therefor using multilayered preforms or sheets having at least one layer of textile or fibrous material combined with at least one plastics layer
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C70/00Shaping composites, i.e. plastics material comprising reinforcements, fillers or preformed parts, e.g. inserts
    • B29C70/02Shaping composites, i.e. plastics material comprising reinforcements, fillers or preformed parts, e.g. inserts comprising combinations of reinforcements, e.g. non-specified reinforcements, fibrous reinforcing inserts and fillers, e.g. particulate fillers, incorporated in matrix material, forming one or more layers and with or without non-reinforced or non-filled layers
    • B29C70/021Combinations of fibrous reinforcement and non-fibrous material
    • B29C70/025Combinations of fibrous reinforcement and non-fibrous material with particular filler
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H27/00Special paper not otherwise provided for, e.g. made by multi-step processes
    • D21H27/30Multi-ply
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2262/00Composition or structural features of fibres which form a fibrous or filamentary layer or are present as additives
    • B32B2262/02Synthetic macromolecular fibres
    • B32B2262/0223Vinyl resin fibres
    • B32B2262/0238Vinyl halide, e.g. PVC, PVDC, PVF, PVDF
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2262/00Composition or structural features of fibres which form a fibrous or filamentary layer or are present as additives
    • B32B2262/02Synthetic macromolecular fibres
    • B32B2262/0253Polyolefin fibres
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2262/00Composition or structural features of fibres which form a fibrous or filamentary layer or are present as additives
    • B32B2262/02Synthetic macromolecular fibres
    • B32B2262/0261Polyamide fibres
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2262/00Composition or structural features of fibres which form a fibrous or filamentary layer or are present as additives
    • B32B2262/02Synthetic macromolecular fibres
    • B32B2262/0276Polyester fibres
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2262/00Composition or structural features of fibres which form a fibrous or filamentary layer or are present as additives
    • B32B2262/06Vegetal fibres
    • B32B2262/062Cellulose fibres, e.g. cotton
    • B32B2262/067Wood fibres
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2264/00Composition or properties of particles which form a particulate layer or are present as additives
    • B32B2264/02Synthetic macromolecular particles
    • B32B2264/0214Particles made of materials belonging to B32B27/00
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2264/00Composition or properties of particles which form a particulate layer or are present as additives
    • B32B2264/10Inorganic particles
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2605/00Vehicles
    • B32B2605/003Interior finishings
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H13/00Pulp or paper, comprising synthetic cellulose or non-cellulose fibres or web-forming material
    • D21H13/10Organic non-cellulose fibres
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H17/00Non-fibrous material added to the pulp, characterised by its constitution; Paper-impregnating material characterised by its constitution
    • D21H17/20Macromolecular organic compounds
    • D21H17/33Synthetic macromolecular compounds
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H17/00Non-fibrous material added to the pulp, characterised by its constitution; Paper-impregnating material characterised by its constitution
    • D21H17/63Inorganic compounds
    • D21H17/67Water-insoluble compounds, e.g. fillers, pigments
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H21/00Non-fibrous material added to the pulp, characterised by its function, form or properties; Paper-impregnating or coating material, characterised by its function, form or properties
    • D21H21/06Paper forming aids
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H21/00Non-fibrous material added to the pulp, characterised by its function, form or properties; Paper-impregnating or coating material, characterised by its function, form or properties
    • D21H21/14Non-fibrous material added to the pulp, characterised by its function, form or properties; Paper-impregnating or coating material, characterised by its function, form or properties characterised by function or properties in or on the paper

Definitions

  • thermosetting resins have long used particulate fillers and selected reinforcing fibers within thermosetting resins, and more recently within thermoplastic resins.
  • automotive industry has long used resin impregnated fiber mats to form trunk liners, door panels, etc. This technology has also led to the development of certain thermoformable compositions containing natural fibers, and thermosetting or thermoplastic polymeric materials.
  • thermoformable material comprising reinforcing fibers, a fibrous polyolefin dough, particulate thermoplastic polymer, and a binder.
  • the presence of the fibrous polyolefin dough in a substantial concentration has added significantly to the cost of the product. Also, the binder has added a significant production cost.
  • thermoformable sheet comprising vegetable fibers and synthetic polymer fibers.
  • Inorganic fillers may be included in such compositions.
  • the presence of the synthetic polymer fibers in a substantial concentration has added a significant production cost.
  • thermoformable mat having acceptable mechanical properties which can be produced on a relatively economical basis.
  • thermoformable mat having satisfactory mechanical properties which can be formed and molded on a relatively expeditious basis.
  • thermoformable mat which incorporates thermoplastic polymeric components and overcomes the lengthy molding times associated with compositions of the prior art which incorporate thermosetting polymeric materials.
  • thermoformable mat which is substantially free of a costly binder.
  • thermoformable mat having satisfactory mechanical properties which contains a relatively low concentration of relatively expensive thermoplastic polymer fibrils and a more substantial concentration of relatively inexpensive particulate inorganic material together with less expensive non-fibrous thermoplastic synthetic polymer particles.
  • a relatively inexpensive mat having a single ply thickness of approximately 15 to 60 mils and a density of approximately 25 to 45 lbs./ft. 3 capable of undergoing densification and thermoforming upon the application of heat and pressure is provided which consists essentially of a substantially random array of:
  • thermoplastic synthetic polymer fibrils having a melting temperature below 450° F.
  • a cellulosic fiber reinforced thermoformed laminate having a density of approximately 60 to 75 lbs./ft. 3 formed by the application of heat and pressure to a plurality of the mats of the present invention while in a stacked configuration at a temperature in excess of the melting temperature of the synthetic polymer of the components (b) and (c) wherein densification takes place within the mats and thermal bonding takes place within and between adjacent mats.
  • FIG. 1 depicts a single ply of a thermoformable mat of the present invention.
  • FIG. 2 depicts five stacked plies of a thermoformable mat of the present invention.
  • FIG. 3 depicts a laminate of five plies of the thermoformable mat of the present invention following the application of heat at a temperature in excess of the melting temperature of components (b) and (c) and pressure wherein densification and thermal bonding within and between adjacent mats took place. Following the application of such heat and pressure, the individual ply identity commonly will no longer be visually apparent.
  • FIG. 4 depicts a representative contoured inner automobile door liner panel formed by thermoforming a large segment of the five stacked plies of FIG. 2.
  • thermoformable mats of the present invention may be formed by wet-laying from a liquid dispersion or by air-laying wherein the required components are present in appropriate concentrations as indicated.
  • the thermoformable mats of the present invention comprise (a) natural relatively coarse cellulosic fibers, (b) thermoplastic synthetic polymer fibrils, (c) thermoplastic synthetic polymer particles, and (d) substantially voidfree substantially water-insoluble particulate inorganic material.
  • a binder e.g., a polymer latex binder
  • components (c) and (d) are substantially dispersed among and substantially physically retained via entrapment by components (a) and (b) in spite of the lack of reliance upon a binder to provide cohesiveness. It surprisingly has been found that the highly satisfactory product of the present invention can be formed even in the absence of such a binder.
  • the resulting product is capable of being handled and shipped prior to thermoforming (as described hereafter) while retaining its physical integrity. Also, segregation of the various components surprisingly does not occur to any significant degree prior to densification and thermoforming. There is no significant loss of the particulate components present therein.
  • thermoformable mats of the present invention commonly have a thickness of approximately 15 to 60 mils and a density of approximately 25 to 45 lbs./ft. 3 prior to undergoing densification and thermoforming.
  • the mats have a thickness of approximately 30 to 45 mils and a density of approximately 30 to 40 lbs./ft. 3 prior to densification and molding.
  • Such mats conveniently may be provided as discrete sheets or as a continuous roll.
  • Relatively coarse cellulosic fibers constitute the first essential component of the thermoformable mats of the present invention.
  • Any cellulosic fibers commonly used in the manufacture of felt and paper can be selected so long as they possess the requisite coarseness. Such fibers can be economically provided and constitute approximately 15 to 50 percent on a dry basis of the resulting mat.
  • the cellulosic fibers are present in the mat in a concentration of approximately 15 to 25 percent by weight.
  • the natural cellulosic fibers include ionic or hydrophilic groups which aid in their water dispersibility. Such fibers are naturally formed and may be lignocellulosic fibers.
  • Representative cellulosic fibers are substantially unrefined wood pulp, cotton linters, waste paper, reclaimed Kraft, etc.
  • the wood pulp may be ground wood pulp, steam-heated mechanical pulp, chemimechancial pulp, semichemical pulp, chemical pulp, etc., which can be derived from softwoods or hardwoods. Wood pulp derived from softwoods is preferred. Specific examples are unbleached sulfite pulp, bleached sulfite pulp, unbleached sulfate pulp, and bleached sulfate pulp.
  • the natural relatively coarse cellulosic fibers are softwood Kraft fibers derived from corrugated box scrap.
  • the relatively coarse cellulosic fibers selected for use in the present invention possess a Canadian standard freeness at 0.3 percent consistency greater than 600 ml. (e.g., approximately 620 to 800 ml.).
  • the Canadian standard freeness of such cellulosic fibers is approximately 620 to 720 ml., and most preferably approximately 650 to 700 ml.
  • Such Canadian standard freeness test can be carried out in accordance with the standard procedure described in TAPPI Test Method T227 os-58.
  • the relatively coarse nature of the natural cellulosic fibers has been found to be necessary to achieve sufficiently rapid drainage and water removal during a wet-laying mat formation technique while preventing segregation of particulate polymeric and inorganic materials thereby providing an acceptable uniformity of distribution throughout the thickness of the mat and a good retention of the particulate components.
  • Thermoplastic synthetic polymer fibrils having a melting temperature below 450° F. constitute the second essential component of the thermoformable mats of the present invention.
  • the synthetic polymer fibrils preferably have a melting temperature below 400° F. (e.g., in the range of approximately 270 to 330° F.).
  • Such fibrils are provided in a relatively low concentration of approximately 10 to 25 percent by weight on a dry basis, and preferably in a concentration of approximately 15 to 20 percent by weight on a dry basis.
  • Representative classes of thermoplastic synthetic polymer fibrils are polyolefins, polyesters, polyamides, and polyvinylchloride.
  • the thermoplastic synthetic polymer fibrils are a polyolefin, such as polyethylene or polypropylene.
  • the synthetic polymer fibrils suitable for use in the present invention are sometimes identified as "synthetic pulp” and are fine, highly branched, discontinuous water-dispersible fibers. Highly satisfactory synthetic polymer fibrils for use in the present invention are available from Hercules Incorporated and are marketed as PULPEX polyolefin pulps.
  • the synthetic polymer fibrils have a length of approximately 0.6 to 2.5 mm., and most preferably a length of approximately 0.6 to 1.2 mm.
  • a fibril denier of approximately 1 to 15 commonly is selected.
  • Such fibrils in a preferred embodiment possess an aspect ratio of approximately 15:1 to 85:1, and in a particularly preferred embodiment possess an aspect ratio of approximately 15:1 to 40:1.
  • Such fibrils in conjunction with the other mat components greatly aid the uniform thermoforming of the mats.
  • Non-fibrous thermoplastic synthetic polymer particles having a melting temperature below 450° F. constitute the third essential component of the thermoformable mats of the present invention.
  • the thermoplastic particles preferably have a melting temperature below 400° F. (e.g., in the range of 270° to 330° F.) and preferably are substantially the same chemically as the thermoplastic synthetic polymer fibrils.
  • Such thermoplastic polymer particles are relatively inexpensive and are provided in a concentration of approximately 15 to 30 percent by weight on a dry basis, and preferably in a concentration of approximately 20 to 25 percent by weight on a dry basis.
  • Representative nonfibrous thermoplastic synthetic polymer particles are polyolefins, polyesters, polyamides, and polyvinylchloride.
  • the non-fibrous thermoplastic polymer particles are a polyolefin, such as polyethylene or polypropylene.
  • the non-fibrous thermoplastic synthetic polymer particles have a particle size of approximately 0.075 to 0.6 mm., and most preferably have a particle size of approximately 0.15 to 0.25 mm.
  • Such non-fibrous particles can be formed by grinding the polymer using known technology. Thermoplastic synthetic polymer scrap following grinding can be used to advantage since it is relatively inexpensive and results in an additional cost savings.
  • thermoplastic synthetic polymer fibrils and the non-fibrous thermoplastic synthetic polymer particles be substantially the same chemically or at least compatible in the melt so that strong thermal bonding takes place between the same. Accordingly, upon thermal bonding the thermoplastic synthetic polymer fibrils and non-fibrous thermoplastic synthetic polymer particles will coalesce to form a substantially continuous matrix.
  • the sum of thermoplastic synthetic polymer fibrils and the thermoplastic synthetic polymer particles in the thermoformable mats of the present invention is approximately 38 to 42 percent by weight.
  • a substantially void-free substantially water-insoluble particulate inorganic material constitutes the fourth essential component of the thermoformable mats of the present invention.
  • Such material may be selected from among fillers previously employed in felts, papers, and plastics.
  • Such particles are relatively inexpensive and are provided in a substantial concentration as indicated.
  • the inorganic particles are provided in the mats of the present invention in a concentration of approximately 30 to 60 percent by weight on a dry basis, and preferably in a concentration of approximately 35 to 45 percent by weight on a dry basis.
  • substantially void-free substantially water-insoluble particulate inorganic materials are talc, calcium carbonate, clay, vermiculite, mica, titanium dioxide, amorphous silica, zinc oxide, barium sulfate, calcium sulfate, aluminum silicate, magnesium silicate, aluminum trihydrate, magnesium carbonate, and mixtures of two or more of these.
  • talc is utilized.
  • the particle size of the inorganic particulate material is approximately 40 to 200 microns and approximately 40 to 150 microns in a particularly preferred embodiment.
  • the mat be well dried to expel adhering moisture while heating at a moderate temperature well below the melting temperature of the thermoplastic components (e.g., at 160° F.) prior to computing the percent by weight of each component. Accordingly, the "on a dry basis" terminology used herein contemplates that any adhering water has been expelled and does not enter into the calculation.
  • thermoformable mat of the present invention constitutes approximately 17 percent by weight on a dry basis of the relatively coarse cellulosic fibers, approximately 18 percent by weight on a dry basis of the thermoplastic synthetic polymer fibrils, approximately 20 percent by weight of the substantially non-fibrous thermoplastic synthetic polymer particles, and approximately 45 percent by weight of the substantially void-free substantially water-insoluble particulate inorganic material.
  • the relatively inexpensive thermoformable mats of the present invention be formed by wet-laying from an aqueous dispersion.
  • Such technique has been found to be capable of producing a highly uniform product.
  • the mats are formed by the de-watering of an aqueous dispersion containing the four essential components with the use of a flocculant to aid the agglomeration of particles, a paper-making machine (e.g., a Fourdrinier machine) to form a wet web from which excess water is drained, roller presses to remove water, and a drier to further reduce the water content while maintaining the mat at all times at a temperature below the melting temperature of the thermoplastic polymer components.
  • a paper-making machine e.g., a Fourdrinier machine
  • roller presses to remove water
  • a drier to further reduce the water content while maintaining the mat at all times at a temperature below the melting temperature of the thermoplastic polymer components.
  • the flocculating agent may be selected from among those agents heretofore utilized in paper and felt manufacture. Such flocculating agents are sometimes called “deposition aids" and serve to coalesce at the appropriate time in the formation process the dispersion so that the particulate components present therein are deposited among and between the fibrous components as the wet mat is formed.
  • the flocculating agents do not serve a binding function.
  • Such flocculating agents commonly are water-dispersible ionic compounds or polymers. The ionic charge of the flocculating agent typically is opposite to that of the dispersed particles.
  • Representative flocculants which may be employed include cationic starch; water-soluble inorganic salts such as alum, aluminum sulfate, calcium chloride, and magnesium chloride; and water-soluble ionic organic polymers such as polyethyleneimine and ionic polyacrylamides. Combinations of flocculating agents may be selected. The use of water-soluble ionic organic polymers as flocculants is preferred.
  • the flocculating agents commonly are introduced in a concentration of approximately 0.02 to 0.1 percent by weight of the mat to a previously prepared substantially uniform aqueous dispersion of the mat-forming components which are provided in the aqueous dispersion in a concentration of approximately 0.5 to 6 percent by weight (e.g., approximately 1 to 5 percent by weight).
  • minor amounts of other components other than a binder optionally are included in the mats of the present invention, these too are present in the aqueous dispersion at the time the flocculant is introduced. It is essential that these additional components do not alter the basic character of the mats of the present invention.
  • Representative optional components which may be included in a minor concentration are inorganic fibers, wet end additives, antioxidants, colorants, pigments, flame retardants, biocides, etc.
  • thermoformable mats of the present invention include a Fourdrinier machine, a cylinder machine, a suction machine such as a Rotoformer, millboard equipment, etc. Particularly good results have been achieved through the use of a Fourdrinier machine.
  • a Fourdrinier machine For further details, reference can be made to the general summary of paper and paper making found in the Kirk-Othmer Encyclopedia of Chemical Technology at pages 494 to 510 which was published by Interscience Publishers, Inc. (New York, New York 1967).
  • the components of the aqueous dispersion are admixed by stirring with water for a sufficient period of time to obtain a substantially uniform admixture having a higher concentration of solids than that utilized when flocculation is carried out. Typically such higher concentration will be approximately 12 to 18 percent by weight and aids the dispersion.
  • Water typically next is added with stirring to produce a substantially uniform dispersion having a solids content of approximately 0.5 to 6 percent (e.g., preferably approximately 1 to 5 percent by weight) prior to the addition of the flocculant.
  • the flocculant is added with stirring and the dispersion next is transferred to the paper-making machine. Drainage of excess water from the continuous wet web readily is accomplished as water passes through the wire of the machine.
  • the resulting web subsequently may be passed through roller presses adjusted to achieve the appropriate mat thickness and then through circulating air-drying ovens or over heated drums. It is essential that the resulting mat at all times during its formation be maintained at a temperature below that at which its thermoplastic polymer components melt.
  • thermoforming readily can be formed into an attractive rigid article on a relatively economical basis when subjected to heat and pressure.
  • the thermoforming may be carried out in platen heaters or in similar equipment. During such thermoforming it is essential that the resulting mats be heated to a temperature which exceeds the melting temperature of the thermoplastic synthetic polymer components. Care is taken, however, not to heat the mats to a temperature which would cause any substantial degradation to the cellulosic fiber components.
  • Suitable pressures to accomplish densification and thermoforming commonly range from approximately 50 to 200 psi.
  • thermoforming the thermoplastic synthetic polymer fibrils and the non-fibrous thermoplastic synthetic polymer particles are deformed and are caused to flow and to surround the cellulosic fibers and the substantially void-free substantially water-insoluble particulate inorganic material where they serve as a substantially continuous matrix phase.
  • the cellulosic fibers serve as fibrous reinforcement in the densified product and the substantially water-insoluble particulate inorganic material which is present in a substantial concentration imparts stiffness to the resulting rigid product.
  • the respective components are provided in the requisite concentrations found to achieve an attractive product even in the absence of a binder.
  • the product is allowed to cool prior to pressure release and removal from the mold in which thermoforming is accomplished. No curing step is required as in prior art thermoforming operations which utilize a thermosetting resin.
  • the product of the present invention commonly exhibits a density of approximately 60 to 75 lbs./ft. 3 (e.g., approximately 60 to 68 lbs./ft. 3 ) and a single mat or ply thickness of approximately 10 to 35 mils (e.g., approximately 15 to 30 mils).
  • thermoformed sheet a low cost rigid thermoformed sheet
  • a cellulosic fiber reinforced thermoformed laminate having a density of approximately 55 to 70 lbs./ft. 3 is formed by the application of heat and pressure to a plurality of the mats while in a stacked configuration at a temperature in excess of the melting temperature of the thermoplastic synthetic polymer fibrils and the non-fibrous thermoplastic synthetic polymer particles wherein thermal bonding takes place within and between adjacent mats. For instance, approximately two to seven, or more, of the mats may be thermally bonded while in a stacked configuration.
  • the mats while in a stacked substantially flat configuration initially are subjected to heat and pressure wherein densification and thermal bonding take place and subsequently while the resulting densified and thermally bonded mats are present in a mold wherein a different configuration is imparted (i.e., a contoured configuration).
  • the resulting cellulosic fiber reinforced product can be used to advantage as a shaped rigid panel for use as an inner automobile door liner or in similar automotive end uses such as spare wheel covers which require a rigid sheet or panel having a predetermined configuration.
  • Representative non-automotive uses for the product include furniture panels, interior/exterior partitions, molded doors, etc.
  • a decorative surface optionally may be applied to the product either before or after thermoforming.
  • An aqueous dispersion is prepared which is capable of producing a mat in accordance with the present invention containing (a) approximately 17 percent by weight on a dry basis cellulosic fibers having a Canadian standard freeness at 0.3 percent consistency of approximately 650 ml., (b) approximately 18 percent by weight on a dry basis of polyethylene fibrils having a melting temperature of 270° F., lengths of approximately 0.6 to 1.2 mm.
  • the relatively coarse cellulosic fibers are provided primarily as softwood Kraft corrugated box stock having a weight of approximately 750 lbs. on a dry basis.
  • the polyethylene fibers are obtained from Hercules Incorporated under the PULPEX E-CP polyolefin pulp designation. One thousand pounds of this material on a dry basis are provided which contribute approximately 920 lbs. of polyethylene fibrils and an additional approximately 80 lbs. of cellulosic fibers.
  • the non-fibrous polyethylene particles are obtained from the Soltex Polymer Corporation under the T60-1000 polyethylene flake designation. Approximately 1000 lbs. of this component on a dry basis are utilized.
  • the finely ground talc is obtained from Talc B.S.Q. Inc. and approximately 2250 lbs. of this component on a dry basis are utilized.
  • the four essential components are substantially uniformly dispersed in water via mechanical stirring sufficient to break up the Kraft corrugated box stock and insufficient to alter the relatively coarse nature of the cellulosic fibers in an initial concentration of 18 percent solids by weight while the water is at a temperature of approximately 100° F. Additional water is added and the total solids content is reduced to approximately 2 percent by weight.
  • aqueous dispersion As the aqueous dispersion is brought to the head box of a Fourdrinier machine, 15 lbs on a dry basis of cationic polyacrylamide flocculant available from Dow Chemical Company under the Separan 412 designation are added which facilitate the agglomeration of the aqueous dispersion.
  • a wet-laid mat derived from the aqueous dispersion next is laid on the moving wire of the Fourdrinier machine where it is drained, is passed through roller presses to further reduce the water content, and subsequently is dried by sequential contact with approximately 18 steam-heated drier drums provided at approximately 250° F. prior to being taken up as a roll.
  • the resulting product has a thickness of 35 mils and a density of 36 lbs./ft. 3 and comprises a random array of the four essential components.
  • the polyethylene particles and the talc particles are substantially dispersed among and substantially physically retained by entrapment by the Kraft fibers and the polyethylene fibrils.
  • the product is flexible and typical of felts and paper and can be readily handled without any significant loss of polyethylene particles and the talc particles.
  • FIG. 1 illustrates a section of a single ply 2 of the resulting mat.
  • five plies of the dry mat 2, 4, 6, 8 and 10 are stacked and are placed in a platen heater heated at 350° F. and are retained therein until a mat temperature of 330° F. is reached whereupon the mats are placed while at such temperature in a contoured mold provided at 230° F. for 60 seconds while under a pressure of 70 psi to form a densified thermally bonded laminate in the form of the contoured inner automobile door liner 12 of FIG. 4.
  • the resulting shaped five ply laminate has a thickness of 100 mils, a density of 62 lbs./ft. 3 , a cross-machine direction modulus of 200,000 psi, and a cross-machine direction yield strength of 3,000 psi.

Abstract

A relatively inexpensive mat is provided which through the application of heat and pressure readily can be densified to form rigid shaped articles. The mat is substantially free of a binder (e.g., a latex binder) and consists essentially of a substantially random array of (a) relatively coarse cellulosic fibers, (b) thermoplastic synthetic polymer fibrils, (c) non-fibrous thermoplastic synthetic polymer particles, and (d) substantially void-free substantially water-insoluble particulate inorganic material (e.g., talc) in the specified quantities. The mat preferably is formed by wet-laying from an aqueous dispersion wherein the (c) and (d) components are dispersed among and physically retained by the (a) and (b) components. A plurality of the mats while stacked may be subjected to heat and pressure to accomplish densification and thermal bonding within and between adjoining sheets to form a laminate. The resulting cellulosic fiber reinforced product can be used to advantage as a shaped rigid panel for use as an inner automobile door liner or in similar end uses which require a rigid sheet or panel having a predetermined configuration. A decorative surface optionally may be applied to the resulting article.

Description

BACKGROUND OF THE INVENTION
The plastics industry has long used particulate fillers and selected reinforcing fibers within thermosetting resins, and more recently within thermoplastic resins. Also, the automotive industry has long used resin impregnated fiber mats to form trunk liners, door panels, etc. This technology has also led to the development of certain thermoformable compositions containing natural fibers, and thermosetting or thermoplastic polymeric materials.
In U.S. Pat. No. 3,325,345 to Hider is disclosed the formation of a water-laid product comprising relatively fine fibrillated cellulosic fibers, and a particulate thermoplastic polymer. The relatively fine nature of the cellulosic fibers has tended to complicate water removal during the formation of the product.
In U.S. Pat. No. 4,451,539 to Vallee is disclosed a thermoformable material comprising reinforcing fibers, a fibrous polyolefin dough, particulate thermoplastic polymer, and a binder. The presence of the fibrous polyolefin dough in a substantial concentration has added significantly to the cost of the product. Also, the binder has added a significant production cost.
In British patent No. 1,453,503 to Solvey & Cie is disclosed a thermoformable sheet comprising vegetable fibers and synthetic polymer fibers. Inorganic fillers may be included in such compositions. The presence of the synthetic polymer fibers in a substantial concentration has added a significant production cost.
It is an object of the present invention to provide a novel thermoformable mat having acceptable mechanical properties which can be produced on a relatively economical basis.
It is an object of the present invention to provide a novel soft and flexible thermoformable mat which can be readily handled and transported without damage prior to utilization.
It is an object of the present invention to provide a novel thermoformable mat having satisfactory mechanical properties which can be formed and molded on a relatively expeditious basis.
It is an object of the present invention to provide a novel thermoformable mat which incorporates thermoplastic polymeric components and overcomes the lengthy molding times associated with compositions of the prior art which incorporate thermosetting polymeric materials.
It is an object of the present invention to provide a novel thermoformable mat which is substantially free of a costly binder.
It is an object of the present invention to provide a novel thermoformable mat having satisfactory mechanical properties which contains a relatively low concentration of relatively expensive thermoplastic polymer fibrils and a more substantial concentration of relatively inexpensive particulate inorganic material together with less expensive non-fibrous thermoplastic synthetic polymer particles.
It is another object of the present invention to provide a novel thermoformable mat which while stacked may be subjected to heat and pressure to accomplish densification and thermal bonding within and between adjoining sheets to form a laminate.
It is another object of the present invention to provide a novel thermoformed laminate comprising cellulosic fibers and a consolidated thermoplastic resin which exhibits superior impact resistance when compared to products which employ a thermoset resin or unfilled injection molded plastics.
It is a further object of the present invention to provide a novel thermoformed laminate of good uniformity having a density of approximately 60 to 75 lbs./ft.3 which can be used to advantage as a shaped rigid panel for use as an inner automobile door liner or in similar end uses which require a rigid sheet or panel having a predetermined configuration.
It is yet another object of the present invention to provide a novel thermoformed laminate to which a decorative surface optionally may be readily applied.
These and other objects, as well as the scope, nature, and utilization of the claimed invention will be apparent from the following detailed description and appended claims.
SUMMARY OF THE INVENTION
A relatively inexpensive mat having a single ply thickness of approximately 15 to 60 mils and a density of approximately 25 to 45 lbs./ft.3 capable of undergoing densification and thermoforming upon the application of heat and pressure is provided which consists essentially of a substantially random array of:
(a) approximately 15 to 50 percent by weight on a dry basis of natural relatively coarse cellulosic fibers having a Canadian standard freeness at 0.3 percent consistency greater than 600 ml.,
(b) approximately 10 to 25 percent by weight on a dry basis of thermoplastic synthetic polymer fibrils having a melting temperature below 450° F.,
(c) approximately 15 to 30 percent by weight on a dry basis of substantially non-fibrous thermoplastic synthetic polymer particles having a melting temperature below 450° F., and
(d) approximately 35 to 60 percent by weight on a dry basis of substantially void-free substantially water-insoluble particulate inorganic material,
with the mat being substantially free of a binder and the components (c) and (d) being substantially dispersed among and substantially physically retained via entrapment by the components (a) and (b).
A cellulosic fiber reinforced thermoformed laminate is provided having a density of approximately 60 to 75 lbs./ft.3 formed by the application of heat and pressure to a plurality of the mats of the present invention while in a stacked configuration at a temperature in excess of the melting temperature of the synthetic polymer of the components (b) and (c) wherein densification takes place within the mats and thermal bonding takes place within and between adjacent mats.
DETAILED DESCRIPTION OF THE DRAWINGS
FIG. 1 depicts a single ply of a thermoformable mat of the present invention.
FIG. 2 depicts five stacked plies of a thermoformable mat of the present invention.
FIG. 3 depicts a laminate of five plies of the thermoformable mat of the present invention following the application of heat at a temperature in excess of the melting temperature of components (b) and (c) and pressure wherein densification and thermal bonding within and between adjacent mats took place. Following the application of such heat and pressure, the individual ply identity commonly will no longer be visually apparent.
FIG. 4 depicts a representative contoured inner automobile door liner panel formed by thermoforming a large segment of the five stacked plies of FIG. 2.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
The relatively inexpensive thermoformable mats of the present invention may be formed by wet-laying from a liquid dispersion or by air-laying wherein the required components are present in appropriate concentrations as indicated. As discussed in detail hereafter, the thermoformable mats of the present invention comprise (a) natural relatively coarse cellulosic fibers, (b) thermoplastic synthetic polymer fibrils, (c) thermoplastic synthetic polymer particles, and (d) substantially voidfree substantially water-insoluble particulate inorganic material. In all instances the resulting mats are substantially free of a binder (e.g., a polymer latex binder) which would add significantly to the cost of production. In the resulting product components (c) and (d) are substantially dispersed among and substantially physically retained via entrapment by components (a) and (b) in spite of the lack of reliance upon a binder to provide cohesiveness. It surprisingly has been found that the highly satisfactory product of the present invention can be formed even in the absence of such a binder. The resulting product is capable of being handled and shipped prior to thermoforming (as described hereafter) while retaining its physical integrity. Also, segregation of the various components surprisingly does not occur to any significant degree prior to densification and thermoforming. There is no significant loss of the particulate components present therein.
The thermoformable mats of the present invention commonly have a thickness of approximately 15 to 60 mils and a density of approximately 25 to 45 lbs./ft.3 prior to undergoing densification and thermoforming. In a particularly preferred embodiment the mats have a thickness of approximately 30 to 45 mils and a density of approximately 30 to 40 lbs./ft.3 prior to densification and molding. Such mats conveniently may be provided as discrete sheets or as a continuous roll.
Relatively coarse cellulosic fibers constitute the first essential component of the thermoformable mats of the present invention. Any cellulosic fibers commonly used in the manufacture of felt and paper can be selected so long as they possess the requisite coarseness. Such fibers can be economically provided and constitute approximately 15 to 50 percent on a dry basis of the resulting mat. In a preferred embodiment the cellulosic fibers are present in the mat in a concentration of approximately 15 to 25 percent by weight. Commonly the natural cellulosic fibers include ionic or hydrophilic groups which aid in their water dispersibility. Such fibers are naturally formed and may be lignocellulosic fibers. Representative cellulosic fibers are substantially unrefined wood pulp, cotton linters, waste paper, reclaimed Kraft, etc. The wood pulp may be ground wood pulp, steam-heated mechanical pulp, chemimechancial pulp, semichemical pulp, chemical pulp, etc., which can be derived from softwoods or hardwoods. Wood pulp derived from softwoods is preferred. Specific examples are unbleached sulfite pulp, bleached sulfite pulp, unbleached sulfate pulp, and bleached sulfate pulp. In a particularly preferred embodiment, the natural relatively coarse cellulosic fibers are softwood Kraft fibers derived from corrugated box scrap.
The relatively coarse cellulosic fibers selected for use in the present invention possess a Canadian standard freeness at 0.3 percent consistency greater than 600 ml. (e.g., approximately 620 to 800 ml.). In a preferred embodiment, the Canadian standard freeness of such cellulosic fibers is approximately 620 to 720 ml., and most preferably approximately 650 to 700 ml. Such Canadian standard freeness test can be carried out in accordance with the standard procedure described in TAPPI Test Method T227 os-58. The relatively coarse nature of the natural cellulosic fibers has been found to be necessary to achieve sufficiently rapid drainage and water removal during a wet-laying mat formation technique while preventing segregation of particulate polymeric and inorganic materials thereby providing an acceptable uniformity of distribution throughout the thickness of the mat and a good retention of the particulate components.
Thermoplastic synthetic polymer fibrils having a melting temperature below 450° F. constitute the second essential component of the thermoformable mats of the present invention. The synthetic polymer fibrils preferably have a melting temperature below 400° F. (e.g., in the range of approximately 270 to 330° F.). Such fibrils are provided in a relatively low concentration of approximately 10 to 25 percent by weight on a dry basis, and preferably in a concentration of approximately 15 to 20 percent by weight on a dry basis. Representative classes of thermoplastic synthetic polymer fibrils are polyolefins, polyesters, polyamides, and polyvinylchloride. In a preferred embodiment the thermoplastic synthetic polymer fibrils are a polyolefin, such as polyethylene or polypropylene. The synthetic polymer fibrils suitable for use in the present invention are sometimes identified as "synthetic pulp" and are fine, highly branched, discontinuous water-dispersible fibers. Highly satisfactory synthetic polymer fibrils for use in the present invention are available from Hercules Incorporated and are marketed as PULPEX polyolefin pulps. In a preferred embodiment, the synthetic polymer fibrils have a length of approximately 0.6 to 2.5 mm., and most preferably a length of approximately 0.6 to 1.2 mm. A fibril denier of approximately 1 to 15 commonly is selected. Such fibrils in a preferred embodiment possess an aspect ratio of approximately 15:1 to 85:1, and in a particularly preferred embodiment possess an aspect ratio of approximately 15:1 to 40:1. Such fibrils in conjunction with the other mat components greatly aid the uniform thermoforming of the mats.
Non-fibrous thermoplastic synthetic polymer particles having a melting temperature below 450° F. constitute the third essential component of the thermoformable mats of the present invention. The thermoplastic particles preferably have a melting temperature below 400° F. (e.g., in the range of 270° to 330° F.) and preferably are substantially the same chemically as the thermoplastic synthetic polymer fibrils. Such thermoplastic polymer particles are relatively inexpensive and are provided in a concentration of approximately 15 to 30 percent by weight on a dry basis, and preferably in a concentration of approximately 20 to 25 percent by weight on a dry basis. Representative nonfibrous thermoplastic synthetic polymer particles are polyolefins, polyesters, polyamides, and polyvinylchloride. In a preferred embodiment the non-fibrous thermoplastic polymer particles are a polyolefin, such as polyethylene or polypropylene. Also, in a preferred embodiment, the non-fibrous thermoplastic synthetic polymer particles have a particle size of approximately 0.075 to 0.6 mm., and most preferably have a particle size of approximately 0.15 to 0.25 mm. Such non-fibrous particles can be formed by grinding the polymer using known technology. Thermoplastic synthetic polymer scrap following grinding can be used to advantage since it is relatively inexpensive and results in an additional cost savings.
It is beneficial but not essential that the thermoplastic synthetic polymer fibrils and the non-fibrous thermoplastic synthetic polymer particles be substantially the same chemically or at least compatible in the melt so that strong thermal bonding takes place between the same. Accordingly, upon thermal bonding the thermoplastic synthetic polymer fibrils and non-fibrous thermoplastic synthetic polymer particles will coalesce to form a substantially continuous matrix. In a particularly preferred embodiment the sum of thermoplastic synthetic polymer fibrils and the thermoplastic synthetic polymer particles in the thermoformable mats of the present invention is approximately 38 to 42 percent by weight.
A substantially void-free substantially water-insoluble particulate inorganic material constitutes the fourth essential component of the thermoformable mats of the present invention. Such material may be selected from among fillers previously employed in felts, papers, and plastics. Such particles are relatively inexpensive and are provided in a substantial concentration as indicated. For instance, the inorganic particles are provided in the mats of the present invention in a concentration of approximately 30 to 60 percent by weight on a dry basis, and preferably in a concentration of approximately 35 to 45 percent by weight on a dry basis. Representative substantially void-free substantially water-insoluble particulate inorganic materials are talc, calcium carbonate, clay, vermiculite, mica, titanium dioxide, amorphous silica, zinc oxide, barium sulfate, calcium sulfate, aluminum silicate, magnesium silicate, aluminum trihydrate, magnesium carbonate, and mixtures of two or more of these. In a particularly preferred embodiment talc is utilized. Also, in a preferred embodiment the particle size of the inorganic particulate material is approximately 40 to 200 microns and approximately 40 to 150 microns in a particularly preferred embodiment.
As discussed hereafter, minor amounts of other additional components other than a binder may be present in the mats of the present invention so long as the basic character of the product is not substantially changed.
Since the natural relatively coarse cellulosic fibers present in the mat tend to be slightly hygroscopic prior to densification and thermoforming, it is contemplated that the mat be well dried to expel adhering moisture while heating at a moderate temperature well below the melting temperature of the thermoplastic components (e.g., at 160° F.) prior to computing the percent by weight of each component. Accordingly, the "on a dry basis" terminology used herein contemplates that any adhering water has been expelled and does not enter into the calculation.
In a particularly preferred embodiment the thermoformable mat of the present invention constitutes approximately 17 percent by weight on a dry basis of the relatively coarse cellulosic fibers, approximately 18 percent by weight on a dry basis of the thermoplastic synthetic polymer fibrils, approximately 20 percent by weight of the substantially non-fibrous thermoplastic synthetic polymer particles, and approximately 45 percent by weight of the substantially void-free substantially water-insoluble particulate inorganic material.
It is preferred that the relatively inexpensive thermoformable mats of the present invention be formed by wet-laying from an aqueous dispersion. Such technique has been found to be capable of producing a highly uniform product. In a particularly preferred embodiment the mats are formed by the de-watering of an aqueous dispersion containing the four essential components with the use of a flocculant to aid the agglomeration of particles, a paper-making machine (e.g., a Fourdrinier machine) to form a wet web from which excess water is drained, roller presses to remove water, and a drier to further reduce the water content while maintaining the mat at all times at a temperature below the melting temperature of the thermoplastic polymer components. During such formation, hydrogen bonding among adjacent natural cellulosic fibers advantageously serves to impart wet strength to the resulting mat and to aid in the entrapment of particulate components among the fibrous components.
The flocculating agent may be selected from among those agents heretofore utilized in paper and felt manufacture. Such flocculating agents are sometimes called "deposition aids" and serve to coalesce at the appropriate time in the formation process the dispersion so that the particulate components present therein are deposited among and between the fibrous components as the wet mat is formed. The flocculating agents do not serve a binding function. Such flocculating agents commonly are water-dispersible ionic compounds or polymers. The ionic charge of the flocculating agent typically is opposite to that of the dispersed particles. Representative flocculants which may be employed include cationic starch; water-soluble inorganic salts such as alum, aluminum sulfate, calcium chloride, and magnesium chloride; and water-soluble ionic organic polymers such as polyethyleneimine and ionic polyacrylamides. Combinations of flocculating agents may be selected. The use of water-soluble ionic organic polymers as flocculants is preferred. The flocculating agents commonly are introduced in a concentration of approximately 0.02 to 0.1 percent by weight of the mat to a previously prepared substantially uniform aqueous dispersion of the mat-forming components which are provided in the aqueous dispersion in a concentration of approximately 0.5 to 6 percent by weight (e.g., approximately 1 to 5 percent by weight).
If minor amounts of other components other than a binder optionally are included in the mats of the present invention, these too are present in the aqueous dispersion at the time the flocculant is introduced. It is essential that these additional components do not alter the basic character of the mats of the present invention. Representative optional components which may be included in a minor concentration are inorganic fibers, wet end additives, antioxidants, colorants, pigments, flame retardants, biocides, etc.
Representative continuous paper-making machines which may be selected for use when forming the relatively inexpensive thermoformable mats of the present invention include a Fourdrinier machine, a cylinder machine, a suction machine such as a Rotoformer, millboard equipment, etc. Particularly good results have been achieved through the use of a Fourdrinier machine. For further details, reference can be made to the general summary of paper and paper making found in the Kirk-Othmer Encyclopedia of Chemical Technology at pages 494 to 510 which was published by Interscience Publishers, Inc. (New York, New York 1967).
Initially the components of the aqueous dispersion are admixed by stirring with water for a sufficient period of time to obtain a substantially uniform admixture having a higher concentration of solids than that utilized when flocculation is carried out. Typically such higher concentration will be approximately 12 to 18 percent by weight and aids the dispersion. Water typically next is added with stirring to produce a substantially uniform dispersion having a solids content of approximately 0.5 to 6 percent (e.g., preferably approximately 1 to 5 percent by weight) prior to the addition of the flocculant. The flocculant is added with stirring and the dispersion next is transferred to the paper-making machine. Drainage of excess water from the continuous wet web readily is accomplished as water passes through the wire of the machine. The resulting web subsequently may be passed through roller presses adjusted to achieve the appropriate mat thickness and then through circulating air-drying ovens or over heated drums. It is essential that the resulting mat at all times during its formation be maintained at a temperature below that at which its thermoplastic polymer components melt.
The resulting thermoformable mats of the present invention readily can be formed into an attractive rigid article on a relatively economical basis when subjected to heat and pressure. The thermoforming may be carried out in platen heaters or in similar equipment. During such thermoforming it is essential that the resulting mats be heated to a temperature which exceeds the melting temperature of the thermoplastic synthetic polymer components. Care is taken, however, not to heat the mats to a temperature which would cause any substantial degradation to the cellulosic fiber components. Suitable pressures to accomplish densification and thermoforming commonly range from approximately 50 to 200 psi. During thermoforming the thermoplastic synthetic polymer fibrils and the non-fibrous thermoplastic synthetic polymer particles are deformed and are caused to flow and to surround the cellulosic fibers and the substantially void-free substantially water-insoluble particulate inorganic material where they serve as a substantially continuous matrix phase. The cellulosic fibers serve as fibrous reinforcement in the densified product and the substantially water-insoluble particulate inorganic material which is present in a substantial concentration imparts stiffness to the resulting rigid product. The respective components are provided in the requisite concentrations found to achieve an attractive product even in the absence of a binder. The product is allowed to cool prior to pressure release and removal from the mold in which thermoforming is accomplished. No curing step is required as in prior art thermoforming operations which utilize a thermosetting resin.
Following densification and thermoforming the product of the present invention commonly exhibits a density of approximately 60 to 75 lbs./ft.3 (e.g., approximately 60 to 68 lbs./ft.3) and a single mat or ply thickness of approximately 10 to 35 mils (e.g., approximately 15 to 30 mils).
The product of the present invention can be utilized in those applications where a low cost rigid thermoformed sheet is required. In a preferred embodiment a cellulosic fiber reinforced thermoformed laminate having a density of approximately 55 to 70 lbs./ft.3 is formed by the application of heat and pressure to a plurality of the mats while in a stacked configuration at a temperature in excess of the melting temperature of the thermoplastic synthetic polymer fibrils and the non-fibrous thermoplastic synthetic polymer particles wherein thermal bonding takes place within and between adjacent mats. For instance, approximately two to seven, or more, of the mats may be thermally bonded while in a stacked configuration. One accordingly has the option readily to form thermoformed articles having a variety of thicknesses without the need to inventory a number of different starting materials. In an alternate embodiment the mats while in a stacked substantially flat configuration initially are subjected to heat and pressure wherein densification and thermal bonding take place and subsequently while the resulting densified and thermally bonded mats are present in a mold wherein a different configuration is imparted (i.e., a contoured configuration).
The resulting cellulosic fiber reinforced product can be used to advantage as a shaped rigid panel for use as an inner automobile door liner or in similar automotive end uses such as spare wheel covers which require a rigid sheet or panel having a predetermined configuration. Representative non-automotive uses for the product include furniture panels, interior/exterior partitions, molded doors, etc. A decorative surface optionally may be applied to the product either before or after thermoforming.
The following example is presented as a specific illustration of the claimed invention. It should be understood, however, that the invention is not limited to the specific details set forth in the Example.
EXAMPLE
An aqueous dispersion is prepared which is capable of producing a mat in accordance with the present invention containing (a) approximately 17 percent by weight on a dry basis cellulosic fibers having a Canadian standard freeness at 0.3 percent consistency of approximately 650 ml., (b) approximately 18 percent by weight on a dry basis of polyethylene fibrils having a melting temperature of 270° F., lengths of approximately 0.6 to 1.2 mm. and aspect ratios of approximately 15:1 to 40:1, (c) approximately 20 percent by weight on a dry basis of non-fibrous polyethylene particles having a melting temperature of approximately 270° F., and a particle sizes of approximately 0.15 to 0.25 mm., and (d) approximately 45 percent by weight on a dry basis of finely ground talc having particle sizes of approximately 40 to 200 microns. No binder is present in the aqueous dispersion.
The relatively coarse cellulosic fibers are provided primarily as softwood Kraft corrugated box stock having a weight of approximately 750 lbs. on a dry basis.
The polyethylene fibers are obtained from Hercules Incorporated under the PULPEX E-CP polyolefin pulp designation. One thousand pounds of this material on a dry basis are provided which contribute approximately 920 lbs. of polyethylene fibrils and an additional approximately 80 lbs. of cellulosic fibers.
The non-fibrous polyethylene particles are obtained from the Soltex Polymer Corporation under the T60-1000 polyethylene flake designation. Approximately 1000 lbs. of this component on a dry basis are utilized.
The finely ground talc is obtained from Talc B.S.Q. Inc. and approximately 2250 lbs. of this component on a dry basis are utilized.
The four essential components are substantially uniformly dispersed in water via mechanical stirring sufficient to break up the Kraft corrugated box stock and insufficient to alter the relatively coarse nature of the cellulosic fibers in an initial concentration of 18 percent solids by weight while the water is at a temperature of approximately 100° F. Additional water is added and the total solids content is reduced to approximately 2 percent by weight.
As the aqueous dispersion is brought to the head box of a Fourdrinier machine, 15 lbs on a dry basis of cationic polyacrylamide flocculant available from Dow Chemical Company under the Separan 412 designation are added which facilitate the agglomeration of the aqueous dispersion. A wet-laid mat derived from the aqueous dispersion next is laid on the moving wire of the Fourdrinier machine where it is drained, is passed through roller presses to further reduce the water content, and subsequently is dried by sequential contact with approximately 18 steam-heated drier drums provided at approximately 250° F. prior to being taken up as a roll.
The resulting product has a thickness of 35 mils and a density of 36 lbs./ft.3 and comprises a random array of the four essential components. The polyethylene particles and the talc particles are substantially dispersed among and substantially physically retained by entrapment by the Kraft fibers and the polyethylene fibrils. The product is flexible and typical of felts and paper and can be readily handled without any significant loss of polyethylene particles and the talc particles.
FIG. 1 illustrates a section of a single ply 2 of the resulting mat. As illustrated in FIG. 2, five plies of the dry mat 2, 4, 6, 8 and 10 are stacked and are placed in a platen heater heated at 350° F. and are retained therein until a mat temperature of 330° F. is reached whereupon the mats are placed while at such temperature in a contoured mold provided at 230° F. for 60 seconds while under a pressure of 70 psi to form a densified thermally bonded laminate in the form of the contoured inner automobile door liner 12 of FIG. 4. The resulting shaped five ply laminate has a thickness of 100 mils, a density of 62 lbs./ft.3, a cross-machine direction modulus of 200,000 psi, and a cross-machine direction yield strength of 3,000 psi.
Although the invention has been described with a preferred embodiment, it is to be understood that variations and modifications may be employed without departing from the concept of the invention as defined in the following claims.

Claims (24)

We claim:
1. A mat having a single ply thickness of approximately 15 to 60 mils and a density of approximately 25 to 45 lbs./ft.3 capable of undergoing densification and thermoforming upon the application of heat and pressure consisting essentially of a substantially random array of:
(a) approximately 15 to 50 percent by weight on a dry basis of natural relatively coarse cellulosic fibers having a Canadian standard freeness at 0.3 percent consistency greater than 600 ml.,
(b) approximately 10 to 25 percent by weight on a dry basis of thermoplastic synthetic polymer fibrils having a melting temperature below 450° F., and
(c) approximately 15 to 30 percent by weight on a dry basis of substantially non-fibrous solid particulate thermoplastic synthetic polymer particles having a particle size of approximately 0.075 to 0.6 mm. and a melting temperature below 450° F., and
(d) approximately 35 to 60 percent by weight on a dry basis of substantially void-free substantially water-insoluble particulate inorganic material,
with said mat being substantially free of a binder and said components (c) and (d) being substantially dispersed among and substantially physically retained via entrapment by said components (a) and (b).
2. A mat capable of undergoing thermoforming according to claim 1 having a thickness of approximately 30 to 45 mils.
3. A mat capable of undergoing thermoforming according to claim 1 which has a density of approximately 30 to 40 lbs./ft.3.
4. A mat capable of undergoing thermoforming according to claim 1 wherein said cellulosic fibers of component (a) are substantially unrefined wood pulp.
5. A mat capable of undergoing thermoforming according to claim 1 wherein said cellulosic fibers of component (a) are softwood Kraft fibers.
6. A mat capable of undergoing thermoforming according to claim 1 wherein said thermoplastic synthetic polymer fibrils of component (b) have a melting temperature of approximately 270 to 330° F.
7. A mat capable of undergoing thermoforming according to claim 1 wherein said thermoplastic synthetic polymer fibrils of component (b) are selected from the group consisting of polyolefins, polyesters, polyamides, and polyvinylchloride.
8. A mat capable of undergoing thermoforming according to claim 1 wherein said thermoplastic synthetic polymer fibrils of component (b) are approximately 0.6 to 2.5 mm. in length and possess an aspect ratio of approximately 15:1 to 85:1.
9. A mat capable of undergoing thermoforming according to claim 1 wherein said thermoplastic synthetic polymer fibrils of component (b) are approximately 0.6 to 1.2 mm. in length and possess an aspect ratio of approximately 15:1 to 40:1.
10. A mat capable of undergoing thermoforming according to claim 1 wherein said thermoplastic substantially non-fibrous synthetic polymer particles of component (c) are substantially the same chemically as said thermoplastic synthetic polymer fibrils of component (b).
11. A mat capable of undergoing thermoforming according to claim 1 wherein said thermoplastic substantially non-fibrous synthetic polymer particles of component (c) have a melting temperature of approximately 270 to 330° F.
12. A mat capable of undergoing thermoforming according to claim 1 wherein said thermoplastic substantially non-fibrous synthetic polymer particles of component (c) are selected from the group consisting of polyolefins, polyesters, polyamides, and polyvinylchloride.
13. A mat capable of undergoing thermoforming according to claim 1 wherein said thermoplastic substantially non-fibrous synthetic polymer particles of component (c) possess a particle size of approximately 0.15 to 0.25 mm.
14. A mat capable of undergoing thermoforming according to claim 1 wherein said components (b) and (c) are formed of polyethylene.
15. A mat capable of undergoing thermoforming according to claim 1 wherein the sum of components (b) and (c) is approximately 38 to 42 percent by weight on a dry basis.
16. A mat capable of undergoing thermoforming according to claim 1 wherein said particulate substantially void-free substantially water-insoluble particulate inorganic material of component (d) has a particle size of approximately 40 to 200 microns.
17. A mat capable of undergoing thermoforming according to claim 1 wherein said particulate substantially void-free substantially water-insoluble particulate inorganic material of component (d) has a particle size of approximately 40 to 150 microns.
18. A mat capable of undergoing thermoforming according to claim 1 wherein said particulate substantially void-free substantially water-insoluble particulate inorganic material of component (d) is selected from the group consisting of talc, calcium carbonate, clay, vermiculite, mica, titanium dioxide, amorphous silica, zinc oxide, barium sulfate, calcium sulfate, aluminum silicate, magnesium silicate, aluminum trihydrate, magnesium carbonate, and mixtures of two or more of the foregoing.
19. A mat capable of undergoing thermoforming according to claim 1 wherein said particulate substantially void-free substantially water-insoluble particulate inorganic material of component (d) is talc.
20. A mat capable of undergoing thermoforming according to claim 1 which comprises approximately 17 percent by weight of component (a), approximately 18 percent by weight of component (b), approximately 20 percent by weight of component (c), and approximately 45 percent by weight of component (d).
21. A cellulosic fiber reinforced thermoformed laminate having a density of approximately 60 to 75 lbs./ft.3 formed by the application of heat and pressure to a plurality of the mats while in a stacked configuration having a single ply thickness of approximately 15 to 60 mils and a density of approximately 25 to 45 lbs./ft.3 capable of undergoing densification and thermoforming consisting essentially of a substantially random array of:
(a) approximately 15 to 50 percent by weight on a dry basis of natural relatively coarse cellulosic fibers having a Canadian standard freeness at 0.3 percent consistency greater than 600 ml.,
(b) approximately 10 to 25 percent by weight on a dry basis of thermoplastic synthetic polymer fibrils having a melting temperature below 450° F.,
(c) approximately 15 to 30 percent by weight on a dry basis of substantially non-fibrous solid particulate thermoplastic synthetic polymer particles having a particle size of approximately 0.075 to 0.6 mm. and a melting temperature below 450° F., and
(d) approximately 35 to 60 percent by weight on a dry basis of substantially void-free substantially water-insoluble particulate inorganic material,
with said mats being substantially free of a binder and said components (c) and (d) being substantially dispersed among and substantially physically retained via entrapment by said components (a) and (b), wherein the temperature during the application of said heat and pressure was in excess of the melting temperature of said thermoplastic synthetic polymer of said components (b) and (c) and densification and thermal bonding took place within and between adjacent mats.
22. A cellulosic fiber reinforced thermoformed laminate according to claim 21 wherein approximately two to seven of said mats are thermally bonded.
23. A cellulosic fiber reinforced thermoformed laminate according to claim 21 wherein heat and pressure initially were applied while said mats were in a substantially flat configuration and subsequently while the resulting densified and thermally bonded mats were present in a mold wherein a different configuration was imparted.
24. A process for forming a mat having a single ply thickness of approximately 15 to 60 mils and a density of approximately 25 to 45 lbs./ft3 capable of undergoing densification and thermoforming upon the application of heat and pressure which consists essentially of a substantially random array of:
(a) approximately 15 to 50 percent by weight on a dry basis of natural relatively coarse cellulosic fibers having a Canadian standard freeness at 0.3 percent consistency greater than 600 ml.,
(b) approximately 10 to 25 percent by weight on a dry basis of thermoplastic synthetic polymer fibrils having a melting temperature below 450° F.,
(c) approximately 15 to 30 percent by weight on a dry basis of substantially non-fibrous solid particulate thermoplastic synthetic polymer particles having a particle size of approximately 0.075 to 0.6 mm. and a melting temperature below 450° F., and
(d) approximately 35 to 60 percent by weight on a dry basis of substantially void-free substantially water-insoluble particulate inorganic material,
with said web being substantially free of a binder and said components (c) and (d) being substantially dispersed among and substantially physically retained via entrapment by said components (a) and (b), wherein said process comprises the dewatering of an aqueous dispersion of components (a), (b), (c), and (d) by adding a flocculent to aid the agglomeration of particles, forming a wet web from said resulting aqueous dispersion through the use of a Fourdrinier machine from which excess water is drained, pressing the resulting web through the use of roller presses to remove additional water, and drying the resulting web through the use of a drier to further reduce the water content, while maintaining said mat at all times during its formation at a temperature below the melting temperature of components (b) and (c).
US06/944,227 1986-12-22 1986-12-22 Relatively inexpensive thermoformable mat and rigid laminate formed therefrom Expired - Fee Related US4769109A (en)

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US6180257B1 (en) 1996-10-29 2001-01-30 Crane Plastics Company Limited Partnership Compression molding of synthetic wood material
US6274232B1 (en) 1999-06-18 2001-08-14 The Procter & Gamble Company Absorbent sheet material having cut-resistant layer and method for making the same
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US6708504B2 (en) 2001-01-19 2004-03-23 Crane Plastics Company Llc Cooling of extruded and compression molded materials
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US8167275B1 (en) 2005-11-30 2012-05-01 The Crane Group Companies Limited Rail system and method for assembly
US8460797B1 (en) 2006-12-29 2013-06-11 Timbertech Limited Capped component and method for forming
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US5019212A (en) * 1987-04-27 1991-05-28 Mitsubishi Gas Chemical Co. Method for producing gas-permeable parcelling film
WO1993014150A1 (en) * 1992-01-16 1993-07-22 E.I. Du Pont De Nemours And Company Process for making fluoropolymer composites
AU664463B2 (en) * 1992-01-16 1995-11-16 E.I. Du Pont De Nemours And Company Process for making fluoropolymer composites
WO1993016229A1 (en) * 1992-02-10 1993-08-19 Custom Papers Group Inc. A process for making a paper based product containing a binder
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EP0921230A2 (en) * 1992-02-10 1999-06-09 Custom Papers Group Inc. A paper based product
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WO1994004360A1 (en) * 1992-08-11 1994-03-03 Phenix Composites, Inc. Board stock and method of manufacture from recycled paper
US5635123A (en) 1992-08-11 1997-06-03 Phenix Biocomposites, Inc. Biocomposite material and method of making
US5827607A (en) * 1992-08-31 1998-10-27 Andersen Corporation Advanced polymer wood composite
US5486553A (en) * 1992-08-31 1996-01-23 Andersen Corporation Advanced polymer/wood composite structural member
US6015611A (en) * 1992-08-31 2000-01-18 Andersen Corporation Advanced polymer wood composite
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US5406768A (en) * 1992-09-01 1995-04-18 Andersen Corporation Advanced polymer and wood fiber composite structural component
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US5441801A (en) * 1993-02-12 1995-08-15 Andersen Corporation Advanced polymer/wood composite pellet process
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US5611882A (en) * 1993-08-11 1997-03-18 Phenix Biocomposites, Inc. Board stock and method of manufacture from recycled paper
EP0743173A1 (en) * 1995-05-17 1996-11-20 Société Industrielle des Ets L.A. CHAIGNAUD-S.I.L.A.C. Substantially rigid panel of recyclable composite material and its process of production
US5948524A (en) * 1996-01-08 1999-09-07 Andersen Corporation Advanced engineering resin and wood fiber composite
US5847016A (en) * 1996-05-16 1998-12-08 Marley Mouldings Inc. Polymer and wood flour composite extrusion
US5951927A (en) * 1996-05-16 1999-09-14 Marley Mouldings Inc. Method of making a polymer and wood flour composite extrusion
US6066680A (en) * 1996-05-16 2000-05-23 Marley Mouldings Inc. Extrudable composite of polymer and wood flour
US6984676B1 (en) 1996-10-22 2006-01-10 Crane Plastics Company Llc Extrusion of synthetic wood material
US6180257B1 (en) 1996-10-29 2001-01-30 Crane Plastics Company Limited Partnership Compression molding of synthetic wood material
US6511757B1 (en) 1996-10-29 2003-01-28 Crane Plastics Company Llc Compression molding of synthetic wood material
US5976288A (en) * 1997-01-10 1999-11-02 Ekendahl; Lars O. Method of forming a molded, multi-layer structure
US7709557B2 (en) 1997-09-02 2010-05-04 Xyleco, Inc. Compositions and composites of cellulosic and lignocellulosic materials and resins, and methods of making the same
US6685858B2 (en) 1997-09-05 2004-02-03 Crane Plastics Company Llc In-line compounding and extrusion system
US6344268B1 (en) 1998-04-03 2002-02-05 Certainteed Corporation Foamed polymer-fiber composite
US6280667B1 (en) 1999-04-19 2001-08-28 Andersen Corporation Process for making thermoplastic-biofiber composite materials and articles including a poly(vinylchloride) component
US6971211B1 (en) 1999-05-22 2005-12-06 Crane Plastics Company Llc Cellulosic/polymer composite material
US6468646B2 (en) 1999-06-18 2002-10-22 The Procter & Gamble Company Multi-purpose absorbent and cut-resistant sheet materials
US6274232B1 (en) 1999-06-18 2001-08-14 The Procter & Gamble Company Absorbent sheet material having cut-resistant layer and method for making the same
US6592983B1 (en) 1999-06-18 2003-07-15 The Procter & Gamble Company Absorbent sheet material having cut-resistant particles and methods for making the same
US6383614B1 (en) 1999-06-18 2002-05-07 The Procter & Gamble Company Multi-purpose absorbent and cut-resistant sheet materials
US6662515B2 (en) 2000-03-31 2003-12-16 Crane Plastics Company Llc Synthetic wood post cap
US6708504B2 (en) 2001-01-19 2004-03-23 Crane Plastics Company Llc Cooling of extruded and compression molded materials
US6637213B2 (en) 2001-01-19 2003-10-28 Crane Plastics Company Llc Cooling of extruded and compression molded materials
US6632863B2 (en) 2001-10-25 2003-10-14 Crane Plastics Company Llc Cellulose/polyolefin composite pellet
US6780359B1 (en) 2002-01-29 2004-08-24 Crane Plastics Company Llc Synthetic wood composite material and method for molding
US7825172B2 (en) 2002-03-21 2010-11-02 Xyleco, Inc. Compositions and composites of cellulosic and lignocellulosic materials and resins, and methods of making the same
US20060054061A1 (en) * 2004-09-13 2006-03-16 Ruddick Douglas H Bacteria and mold resistant wallboard
US8074339B1 (en) 2004-11-22 2011-12-13 The Crane Group Companies Limited Methods of manufacturing a lattice having a distressed appearance
US20060270762A1 (en) * 2005-03-17 2006-11-30 Luzenac America, Inc. Cellulosic inorganic-filled plastic composite
US10059035B2 (en) 2005-03-24 2018-08-28 Xyleco, Inc. Fibrous materials and composites
US7971809B2 (en) 2005-03-24 2011-07-05 Xyleco, Inc. Fibrous materials and composites
US7708214B2 (en) 2005-08-24 2010-05-04 Xyleco, Inc. Fibrous materials and composites
US7980495B2 (en) 2005-08-24 2011-07-19 Xyleco, Inc. Fibrous materials and composites
USD782698S1 (en) 2005-11-30 2017-03-28 Cpg International Llc Rail
US10358841B2 (en) 2005-11-30 2019-07-23 Cpg International Llc Rail system and method for assembly
US8167275B1 (en) 2005-11-30 2012-05-01 The Crane Group Companies Limited Rail system and method for assembly
USD782697S1 (en) 2005-11-30 2017-03-28 Cpg International Llc Rail
USD787707S1 (en) 2005-11-30 2017-05-23 Cpg International Llc Rail
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US7743567B1 (en) 2006-01-20 2010-06-29 The Crane Group Companies Limited Fiberglass/cellulosic composite and method for molding
US20090012213A1 (en) * 2006-02-15 2009-01-08 Elkem As Composite Plastics Material
US8460797B1 (en) 2006-12-29 2013-06-11 Timbertech Limited Capped component and method for forming
US8795471B2 (en) 2009-04-20 2014-08-05 Elastopoli Oy Composite intermediate, method for forming same, and use of the composite intermediate
US20150118431A1 (en) * 2012-05-11 2015-04-30 Södra Cell Ab Process for Manufacturing a Composite Article Comprising Cellulose Pulp Fibers and a Thermoplastic Matrix
US9932708B2 (en) * 2012-05-11 2018-04-03 Södra Skogsägarna Ekonomisk Förening Process for manufacturing a composite article comprising cellulose pulp fibers and a thermoplastic matrix
WO2015005854A1 (en) * 2013-07-01 2015-01-15 Sik - Institutet För Livsmedel Och Bioteknik Ab A formable composite material and a method for manufacturing a formable composite material
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